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66 results for “urban biodiversity”
FIGURES 69–74. Male genitalia, left lateral. 69. Megaselia defibaughorum. 70. Megaselia donahuei. 71. Megaselia francoae. 72. Megaselia fujiokai. 73. Megaselia hardingorum. 74 in Opportunity in our Ignorance: Urban Biodiversity Study Reveals 30 New Species and One New Nearctic Record for Megaselia (Diptera: Phoridae) in Los Angeles (California, USA)
FIGURES 69–74. Male genitalia, left lateral. 69. Megaselia defibaughorum. 70. Megaselia donahuei. 71. Megaselia francoae. 72. Megaselia fujiokai. 73. Megaselia hardingorum. 74. Megaselia heini.
FIGURES 63–68. Male genitalia, left lateral. 63. Megaselia armstrongorum. 64. Megaselia bradyi. 65. Megaselia brejchaorum. 66. Megaselia carthayensis. 67. Megaselia ciancii. 68 in Opportunity in our Ignorance: Urban Biodiversity Study Reveals 30 New Species and One New Nearctic Record for Megaselia (Diptera: Phoridae) in Los Angeles (California, USA)
FIGURES 63–68. Male genitalia, left lateral. 63. Megaselia armstrongorum. 64. Megaselia bradyi. 65. Megaselia brejchaorum. 66. Megaselia carthayensis. 67. Megaselia ciancii. 68. Megaselia creasoni.
FIGURES 81–86. Male genitalia, left lateral. 81. Megaselia lombardorum. 82. Megaselia marquezi. 83. Megaselia mikejohnsoni. 84. Megaselia oxboroughae. 85. Megaselia pisanoi. 86 in Opportunity in our Ignorance: Urban Biodiversity Study Reveals 30 New Species and One New Nearctic Record for Megaselia (Diptera: Phoridae) in Los Angeles (California, USA)
FIGURES 81–86. Male genitalia, left lateral. 81. Megaselia lombardorum. 82. Megaselia marquezi. 83. Megaselia mikejohnsoni. 84. Megaselia oxboroughae. 85. Megaselia pisanoi. 86. Megaselia renwickorum.
Figure 3. from Inventory of the Heteroptera (Insecta: Hemiptera) in Komaba Campus of the University of Tokyo, a highly urbanized area in Japan - Biodiversity Data Journal 3: e4981 (24 April 2015) https://doi.org/10.3897/BDJ.3.e4981
Figure 3. - An example of a campus sampling point, indicating as "pic1" in Fig. 2.
Figure 6. from Inventory of the Heteroptera (Insecta: Hemiptera) in Komaba Campus of the University of Tokyo, a highly urbanized area in Japan - Biodiversity Data Journal 3: e4981 (24 April 2015) https://doi.org/10.3897/BDJ.3.e4981
Figure 6. - An example of a campus sampling point, indicating as "pic4" in Fig. 2.
Figure 5. from Inventory of the Heteroptera (Insecta: Hemiptera) in Komaba Campus of the University of Tokyo, a highly urbanized area in Japan - Biodiversity Data Journal 3: e4981 (24 April 2015) https://doi.org/10.3897/BDJ.3.e4981
Figure 5. - An example of a campus sampling point, indicating as "pic3" in Fig. 2.
Figure 4. from Inventory of the Heteroptera (Insecta: Hemiptera) in Komaba Campus of the University of Tokyo, a highly urbanized area in Japan - Biodiversity Data Journal 3: e4981 (24 April 2015) https://doi.org/10.3897/BDJ.3.e4981
Figure 4. - An example of a campus sampling point, indicating as "pic2" in Fig. 2.
Figure 1. from Inventory of the Heteroptera (Insecta: Hemiptera) in Komaba Campus of the University of Tokyo, a highly urbanized area in Japan - Biodiversity Data Journal 3: e4981 (24 April 2015) https://doi.org/10.3897/BDJ.3.e4981
Figure 1. - Locations of the Komaba Campus and six reference sites in Tokyo, Japan.
Fig. 1 in What's Under a Plastic Strip? Hidden Urban Biodiversity in the Beijing Metropolitan Area, China
Fig. 1. Seasonal activity dynamics of adult Dorytomus setosus (a) and Dorytomus roelofsi (b) collected in bandshelter trap on willows in Cuihu Wetland Park, Beijing, China.
Supplementary material 3 from: Schmidt K, Walz A (2021) Ecosystem-based adaptation to climate change through residential urban green structures: co-benefits to thermal comfort, biodiversity, carbon storage and social interaction. One Ecosystem 6: e65706. https://doi.org/10.3897/oneeco.6.e65706
Mean values of microclimatic parameters between 9am and 9pm, based on measurements in the four courtyards (CY): CY 1: light green, CY 2: dark green, CY 3: orange, CY 4: red
Supplementary material 6 from: Schmidt K, Walz A (2021) Ecosystem-based adaptation to climate change through residential urban green structures: co-benefits to thermal comfort, biodiversity, carbon storage and social interaction. One Ecosystem 6: e65706. https://doi.org/10.3897/oneeco.6.e65706
Results from tree mapping and allometric equations, indicating above-ground biomass and carbon stocks
Supplementary material 5 from: Schmidt K, Walz A (2021) Ecosystem-based adaptation to climate change through residential urban green structures: co-benefits to thermal comfort, biodiversity, carbon storage and social interaction. One Ecosystem 6: e65706. https://doi.org/10.3897/oneeco.6.e65706
Results from habitat mapping and biodiversity scores. Domin values = 1: < 4% cover with few individuals; 2: < 4% with several individuals; 3: < 4% with many individuals; 4: 4–10%; 5: 11–25%; 6: 26–33%; 7: 34–50%; 8: 51–75%; 9: 76–90%; 10: 91–100% cover
Data from: Complementing urban agriculture and green spaces is important for ecosystem functions and biodiversity in cities: A systematic review and meta-analysis
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Local and landscape scale variables shape insect diversity in an urban biodiversity hotspot.
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Data from: Evaluating the potential for bird-habitat models to support biodiversity-friendly urban planning
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Data from: Increasing biodiversity in urban green spaces through simple vegetation interventions
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Data from: Plant population success across urban ecosystems – a framework to inform biodiversity conservation in cities
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Homeowner Associations as a vehicle for promoting native urban biodiversity
The loss of habitat due to suburban and urban development represents one of the greatest threats to biodiversity. Conservation developments have emerged as a key player for reconciling new ex-urban residential development with ecosystem services. However, since more than half of the world population live in urban and suburban developments, identifying conservation partners to facilitate with retrofitting existing residential neighborhoods becomes paramount. Homeowner Associations (HOA) manage a significant proportion of residential developments in the United States, which includes the landscape design for yards and gardens. These areas have the potential to mitigate the loss of urban biodiversity when they provide habitat for native wildlife. Therefore the conditions and restrictions imposed upon the homeowner by the HOA could have profound effects on the local wildlife habitat. We explored the potential of HOAs to promote conservation by synthesizing research from three monitoring programs from Phoenix, AZ. We compared native bird diversity, arthropod diversity, and plant diversity between neighborhoods with and without an HOA. Neighborhoods belonging to HOAs had significantly greater bird and plant diversity, though insect diversity did not differ. The institutional framework structuring HOAs including sanctions for enforcement coupled with a predictable maintenance regime that introduces regular disturbance might explain why neighborhoods with an HOA had greater bird diversity. For neighborhoods with an HOA, we analyzed landscape form and management practices. We linked these features with ecological function and suggested how to modify management practices by adopting strategies from the Sustainable Sites Initiative, an international sustainable landscaping program, to help support biodiversity in current and future residential landscapes.
Zonation Prioritization of Urban Biodiversity Quality in Helsinki Metropolitan Area, Finland
<p><strong>Zonation prioritization of urban biodiversity in Helsinki Metropolitan area, Finland</strong></p> <p>Zonation prioritization results of manuscript Jalkanen, Vierikko & Moilanen 2020, Spatial Prioritization for Urban Biodiversity Quality Using Biotope Maps and Expert Opinion, bublished in <em>Urban forestry and Urban Greening</em> (doi: <a href="https://doi.org/10.1016/j.ufug.2020.126586">https://doi.org/10.1016/j.ufug.2020.126586</a>). The area includes the cities Helsinki, Espoo, Kauniainen, and Vantaa, i.e. the capital region of Finland. Urban biotope scores, that this analysis builds upon, can be found in https://zenodo.org/record/1255899</p> <p>This data set includes the Zonation setting and output files (automatically named by Zonation). See Zonation manual (Moilanen et al. 2014, Zonation Version 4 Manual, Conservation biology informatics group, University of Helsinki) for more information. Input feature layers cannot be openly distributed as they base on urban biotope map that partly contains private information.</p> <p>Zonation results are based on expert elicitation and and on a biotope map that was compiled from multiple GIS data sources (see Supplementary 1 in the paper). Therefore, these results do not replace in-depth ecological inventories assessments. Not for planning purposes. No warrant about the correctness, flawlessness, or feasibility of the results is given. Data should be properly cited.</p> <p> </p> <p><strong>Kaupunkibiodiversiteetin Zonation-priorisointitulokset pääkaupunkiseudulla</strong></p> <p>Zonation-priorisointitulokset tutkimusartikkelista Jalkanen, Vierikko & Moilanen 2020, <em>"</em>Spatial Prioritization for Urban Biodiversity Quality Using Biotope Maps and Expert Opinion", joka on julkaistu <em>Urban Forestry and Urban Greening</em> -julkaisusarjassa (doi: <a href="https://doi.org/10.1016/j.ufug.2020.126586">https://doi.org/10.1016/j.ufug.2020.126586</a>). Tutkimusalue käsittää pääkaupunkiseudun (Helsinki, Espoo, Kauniainen ja Vantaa). Analyysi perustuu kaupunkibiotooppien asiantuntijapisteytykselle, joka löytyy osoitteesta https://zenodo.org/record/1255899</p> <p>Tämä aineistopaketti sisältää Zonation-analyysin asetus- ja tulostiedostot (Zonationin automaattisesti nimeäminä). Lisätietoja saat Zonation-käyttöohjeesta (Moilanen ym. 2014, Zonation Version 4 Manual, Conservation biology informatics group, Helsingin yliopisto). Eliöryhmiä kuvaavat paikkatietokerroksia ei voida jakaa avoimesti, sillä ne perustuvat osittain luottamuksellisiin kartta-aineistoihin.</p> <p>Nämä Zonation-tulokset perustuvat asiantuntija-arvioihin sekä biotooppikarttaan, joka on koostettu lukuisista paikkatietolähteistä (tutkimusartikkelin Supplementary data 1). Nämä tulokset eivät siis korvaa tarkempia luontoselvityksiä. Ei sellaisenaan suunnittelukäyttöön. Minkäänlaisia takuita tulosten oikeellisuudesta, virheettömyydestä tai käytettävyydestä ei myönnetä. Aineistoon tulee viitata käytettäessä.</p>
Supplementary material 4 from: Schmidt K, Walz A (2021) Ecosystem-based adaptation to climate change through residential urban green structures: co-benefits to thermal comfort, biodiversity, carbon storage and social interaction. One Ecosystem 6: e65706. https://doi.org/10.3897/oneeco.6.e65706
Habitat types in the four courtyards
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.